Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Trying to find the last day the password changed in the shadow file for multiple users. I can do it on a specific user (user.name) but if the shadow file has more than one user I get a bit stuck. I don't care about service accounts or any other user (just anyone with user.name e.g. bob.smith, sally.brown, etc.). If I use a wildcard, then the script blows up. I am testing this against a dummy shadow.test file (as below). Any help appreciated.

#!/bin/bash
secs_per_day=86400
last_password_change=$(echo $(( $(grep user.name shadow.test |cut -d: -f3) *    
$secs_per_day )))       
date -d@$last_password_change
share|improve this question

3 Answers 3

You're almost there. Let's make a shell function out of the code that you wrote:

getchangetime() {
    local secs_per_day=86400
    local last_password_change=$(echo $(( $(egrep "${1}" /etc/shadow |cut -d: -f3) *  $secs_per_day )))       
    date -d@$last_password_change
}

Then use a for loop to run it for all of the users you care about.

for user in $(cut -d: -f1 /etc/passwd| egrep '[a-zA-Z0-9]\.[a-zA-Z0-9]')
do
    echo -n "$user: "
    getchangetime $user
done

I'm sure that this could be cleaned up a bit (using bash parameter manipulation instead of cut, and probably a couple of other tweaks) but I think that it will do what you want it to do.

share|improve this answer
    
Thanks, this is perfect. I didn't think of using a function. I'm still learning as I go along and this is really helpful. –  ibash Mar 22 '12 at 13:17

Try this:

password_change_dates () {
    secs_per_day=8400 
    while IFS=: read user last ; do
        let last=last*secs_per_day
        printf '%s %s\n' "$user" "$(date -d@$last)"
    done < <(cut -d: -f1,3 "$1" )
}

# user names and password change dates
password_change_dates shadow.test

# just the dates
password_change_dates shadow.test | cut -d' ' -f2-

# just the users
password_change_dates shadow.test | cut -d' ' -f1
share|improve this answer

Is there a reason the "passwd -S" command isn't being used?

There's a reason I put that option in Shadow. Y'all might as well use it :)

Here's the easier way --

passwd -S ${USER} | cut -d' ' -f3

I don't know if the current maintainer (Shadow is over 21, I threw it out of the house ...) has added support so other databases will support the -S option, but I would hope so.

share|improve this answer
    
Answer by the author (sorry to hear the 'why' btw), you kind of need to pick this one :p en.wikipedia.org/wiki/Passwd#History –  DanielM Apr 23 '14 at 15:12
    
I was getting "support" requests well into the '00s (Shadow was written in '87). When Shadow reached 18, I declared it an "adult" and refused to answer questions. I then had one person DEMAND I provide him with FREE support. After all, it was "free" software :) –  Julie in Austin Apr 25 '14 at 2:45
    
I have nightmares about long term support. I often joke when using dates with 4 digit years that this will only work for the next ~8000 years, while being secretly terrified I might somehow be around then and forced to fix them. –  DanielM Apr 25 '14 at 10:48
    
The Shadow maintainers have been doing a fantastic job for the past 18 or 19 years. I had to stop maintaining Shadow when I started at IBM in '95. I thought about getting involved in '09 when I left IBM, but I've since moved from software security to power systems management. It's not clear from your comments if you're a Shadow maintainer. If you are, thanks for taking care of my "child". If not, glad to hear you enjoy my software. –  Julie in Austin May 12 '14 at 2:52
    
No, not a maintainer, just general developer fears. –  DanielM May 13 '14 at 14:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.